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迈向无氢无枝晶水系锌电池:在锌阳极上形成亲锌保护层

Toward Hydrogen-Free and Dendrite-Free Aqueous Zinc Batteries: Formation of Zincophilic Protective Layer on Zn Anodes.

作者信息

Hong Lin, Wang Liang-Yu, Wang Yuling, Wu Xiuming, Huang Wei, Zhou Yongfeng, Wang Kai-Xue, Chen Jie-Sheng

机构信息

School of Chemistry and Chemical Engineering, State Key Laboratory of Metal Matrix Composites, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai, 200240, P. R. China.

出版信息

Adv Sci (Weinh). 2022 Feb;9(6):e2104866. doi: 10.1002/advs.202104866. Epub 2022 Jan 6.

Abstract

Rechargeable aqueous Zn-ion batteries (ZIBs) are regarded as one of the most promising devices for the next-generation energy storage system. However, the uncontrolled dendrite growth on Zn metal anodes and the side hydrogen evolution reaction, which has not yet been well considered, hinder the practical application of these batteries. Herein, a uniform and robust metallic Sb protective layer is designed based on the theoretic calculation and decorated on Zn plate via in situ replacement reaction. Compared with the bare Zn plate, the as-prepared Zn@Sb electrode provides abundant zincophilic sites for Zn nucleation, and homogenizes the electric field around the Zn anode surface, both of which promote the uniform Zn deposition to achieve a dendrite-free morphology. Moreover, the Gibbs free energy (∆G ) calculation and in situ characterization demonstrate that hydrogen evolution reaction can be effectively suppressed by the Sb layer. Consequently, Sb-modified Zn anodes exhibit an ultralow voltage hysteresis of 34 mV and achieve excellent cycling stability over 1000 h with hydrogen- and dendrite-free behaviors. This work provides a facile and effective strategy to suppress both hydrogen evolution reaction and dendrite growth.

摘要

可充电水系锌离子电池(ZIBs)被认为是下一代储能系统中最具前景的装置之一。然而,锌金属负极上不受控制的枝晶生长以及尚未得到充分考虑的析氢副反应,阻碍了这些电池的实际应用。在此,基于理论计算设计了一种均匀且坚固的金属锑保护层,并通过原位置换反应将其修饰在锌板上。与裸锌板相比,制备的Zn@Sb电极可为锌成核提供丰富的亲锌位点,并使锌负极表面周围的电场均匀化,这两者都促进了锌的均匀沉积,从而实现无枝晶形态。此外,吉布斯自由能(∆G)计算和原位表征表明,锑层可有效抑制析氢反应。因此,锑修饰的锌负极表现出34 mV的超低电压滞后,并在1000 h以上实现了优异的循环稳定性,且无析氢和枝晶生长现象。这项工作提供了一种简便有效的策略来抑制析氢反应和枝晶生长。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d376/8867158/4b2cbc951b7d/ADVS-9-2104866-g002.jpg

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